IP Library › Patent Application 18532783
Patent Application
App. No. 18/532,783

METHOD AND SYSTEM FOR AUTONOMOUSLY UNLOADING TAIL-ADJACENT PALLETS IN LOADING DOCKS

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Quick Facts
Patent No.
US None
App. No.
18/532,783
Abstract

A method and a system for a tail-adjacent pallet picking are disclosed. The method includes obtaining a geometry of a ramp, where the ramp operatively connects a trailer floor to a warehouse floor associated with operation of an autonomous forklift and obtaining data comprising a location of the tail-adjacent pallet and a location of pallet pockets of the tail-adjacent pallet. Further, the method includes determining, based on the geometry of the ramp and the obtained data, an inserting trajectory of forks and determining a configuration of the forks of the autonomous forklift based on the inserting trajectory. The forks of the autonomous forklift are inserted into the pallet pockets of the tail-adjacent pallet based on the determined configuration of the forks and the tail-adjacent pallet are extracted based on an extraction trajectory and associated configuration of the forks of the autonomous forklift.

Claims (47)

1 . A method for a tail-adjacent pallet picking, comprising:

obtaining a fixed geometry of a ramp, the ramp operatively connecting a trailer floor to a warehouse floor associated with operation of an autonomous forklift;

obtaining, using a computer processor and a plurality of sensors, data comprising a location of the tail-adjacent pallet and a location of pallet pockets of the tail-adjacent pallet;

determining, using the computer processor and based on the fixed geometry of the ramp and the obtained data, an inserting trajectory of forks;

determining, using the computer processor, a configuration of the forks of the autonomous forklift based on the inserting trajectory;

inserting the forks of the autonomous forklift into the pallet pockets of the tail-adjacent pallet, based on the determined configuration of the forks; and

extracting the tail-adjacent pallet based on the determined configuration of the forks of the autonomous forklift.

2 . The method of claim 1 , wherein determining the inserting trajectory of the forks of the autonomous forklift comprises:

detecting, using the computer processor and based on the fixed geometry of the ramp and the obtained data, a tilt of the autonomous forklift; and

adjusting, using the computer processor and based on the fixed geometry of the ramp, the obtained data, and the detected tilt of the autonomous forklift, a lift and a tilt of the forks and a mast to avoid colliding with a surface, the surface including the warehouse floor, the ramp, and the trailer floor.

3 . The method of claim 1 , wherein determining the configuration of the forks of the autonomous forklift comprises:

detecting, using the computer processor and the plurality of sensors, the location of the tail-adjacent pallet and the location of pallet pockets of the tail-adjacent pallet; and

adjusting, using the computer processor and based on the obtained data, a plurality of degrees of freedom the forks of the autonomous forklift to enable collision-free trajectory for insertion of the forks of the autonomous forklift into the pallet pockets, the plurality of degrees of freedom including a lift, a tilt, a side shift, and a spread of the forks.

4 . The method of claim 1 , wherein the fixed geometry of the ramp comprises a length of the ramp, a width of the ramp, an angle between the ramp and a ramp lip, steepness of the ramp lip, and a shape of the ramp lip.

5 . The method of claim 4 , wherein the fixed geometry of the ramp is obtained, using the computer processor and a machine learning model, by generating a full surface contour model based on a plurality of sensor measurements.

6 . The method of claim 4 , wherein the fixed geometry of the ramp is obtained using manual measurements.

7 . The method of claim 1 , wherein the obtained data may further comprise a variable geometry of the ramp, wherein the variable geometry of the ramp is selected from the group consisting of an angle of the ramp, an angle of a trailer bed, a height of the trailer bed, and combinations thereof.

8 . The method of claim 7 , wherein the variable geometry of the ramp is obtained using the plurality of sensors mounted on the autonomous forklift.

9 . A method for a tail-adjacent pallet picking, comprising:

obtaining, using a computer processor and a plurality of sensors, data comprising a location of a ramp, a location of the tail-adjacent pallet, and a location of pallet pockets of the tail-adjacent pallet, wherein the ramp operatively connects a trailer floor to a warehouse floor associated with operation of an autonomous forklift;

determining, using the computer processor and based on the plurality of sensors, a distance between forks and the ramp;

adjusting, using the computer processor and a machine learning model, a configuration of the forks of the autonomous forklift;

inserting the forks of the autonomous forklift into the pallet pockets of the tail-adjacent pallet, based on the determined configuration of the forks; and

extracting the tail-adjacent pallet based on the determined configuration of the forks of the autonomous forklift.

10 . The method of claim 9 , wherein determining the configuration of the forks of the autonomous forklift comprises:

detecting, using the computer processor and the plurality of sensors, the location of the tail-adjacent pallet and the location of pallet pockets of the tail-adjacent pallet; and

adjusting, using the computer processor and based on the obtained data, a plurality of degrees of freedom the forks of the autonomous forklift to enable collision-free trajectory for insertion of the forks of the autonomous forklift into the pallet pockets, the plurality of degrees of freedom including a lift, a tilt, a side shift, and a spread of the forks.

11 . The method of claim 9 , wherein the data is obtained using the plurality of sensors and a plurality of cameras mounted on the autonomous forklift.

12 . The method of claim 11 , wherein the plurality of sensors mounted on the autonomous forklift determines a surface contour of the ramp, the location of the pallet, and the location of pallet pockets.

13 . The method of claim 9 , wherein a full surface contour model is generated, using the computer processor, based on a plurality of sensor measurements, and

wherein the configuration of the forks is determined based on the full surface contour model.

14 . A system comprising:

an autonomous forklift comprising: a plurality of sensors mounted on the autonomous forklift and forks configured to be inserted into pockets of a tail-adjacent pallet,

the plurality of sensors being configured to obtain data comprising a geometry of a ramp, a location of the tail-adjacent pallet, and a location of pallet pockets in the tail-adjacent pallet;

the ramp operatively connecting a trailer floor to a warehouse floor associated with operation of the autonomous forklift; and

the tail-adjacent pallet being located on the trailer floor, wherein the tail-adjacent pallet is configured to be picked up and moved by the autonomous forklift using an inserting trajectory of the forks of the autonomous forklift,

wherein a configuration of the forks of the autonomous forklift to pick up the tail-adjacent pallet is based on the geometry of the ramp and the location of the tail-adjacent pallet, and the location of pallet pockets in the tail-adjacent pallet.

15 . The system of claim 14 , wherein the plurality of sensors include an Inertial Measurement Unit (“IMU”), a Light Detection and Ranging (“LiDAR,”) a plurality of encoders, and a camera system.

16 . The system of claim 14 , wherein determining the configuration of the forks of the autonomous forklift comprises:

detecting, using a computer processor and the plurality of sensors, the location of the tail-adjacent pallet and the location of pallet pockets of the tail-adjacent pallet; and

adjusting, using the computer processor and based on the obtained data, a plurality of degrees of freedom the forks of the autonomous forklift to enable collision-free trajectory for insertion of the forks of the autonomous forklift into the pallet pockets, the plurality of degrees of freedom including a lift, a tilt, a side shift, and a spread of the forks.

17 . The system of claim 14 , wherein the geometry of the ramp comprises a fixed geometry of the ramp and a variable geometry of the ramp,

wherein the fixed geometry of the ramp includes a length of the ramp, a width of the ramp, an angle between the ramp and a ramp lip, steepness of the ramp lip, and a shape of the ramp lip, and

wherein the variable geometry of the ramp includes an angle of the ramp.

18 . The system of claim 17 , wherein the fixed geometry of the ramp is obtained, using a computer processor and a machine learning model, by generating a full surface contour model based on a plurality of sensor measurements.

19 . The system of claim 17 , wherein the fixed geometry of the ramp is obtained using manual measurements.

20 . The system of claim 17 , wherein the variable geometry of the ramp is obtained using the plurality of sensors mounted on the autonomous forklift.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2026
From: ANDERSON-SPRECHER, PETER; JOSEPH, ARUN; ALADELE, VICTOR; SHETH, VAIBHAV
To: FOX ROBOTICS, INC.
Reel/Frame 075462/0899 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2026
From: FOX ROBOTICS, INC.
To: SYMBOTIC LLC
Reel/Frame 073574/0424 →
RELEASE OF SECURITY INTEREST Recorded Jan 21, 2026
From: SILICON VALLEY BANK, A DIVISION OF FIRST-CITIZENS BANK & TRUST COMPANY
To: FOX ROBOTICS, INC.
Reel/Frame 073538/0763 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2026
From: ANDERSON-SPRECHER, PETER, MR.; DENNIS, AARON, MR.; ALADELE, VICTOR, MR.; SHETE, VAIBHAV, MR.
To: FOX ROBOTICS, INC.
Reel/Frame 074313/0259 →
SECURITY INTEREST Recorded Sep 16, 2025
From: FOX ROBOTICS, INC.
To: FIRST-CITIZENS BANK & TRUST COMPANY
Reel/Frame 072272/0465 →